Lu Cheng-Chang, Dong Shang-Lung, Lin Hsin-Hon, Ni Yu-Ching, Jan Meei-Ling, Chuang Keh-Shih
Department of Medical Imaging and Radiological Sciences, Chung-Shan Medical University, Taichung, Taiwan.
Phys Med Biol. 2017 Feb 21;62(4):N58-N72. doi: 10.1088/1361-6560/aa54a9. Epub 2016 Dec 19.
In this study, we present a new method for estimating the time-activity data using serial timely measurements of thermoluminescent dosimeters (TLDs). The approach is based on the combination of the measurement of surface dose using TLD and Monte Carlo (MC) simulation to estimate the radiopharmaceutical time-activity data. It involves four steps: (1) identify the source organs and outline their contours in computed tomography images; (2) compute the S values on the body surface for each source organ using a MC code; (3) obtain a serial measurement of the dose with numerous TLDs placed on the body surface; (4) solve the dose-activity equation to generate organ cumulative activity for each period of measurement. The activity of each organ at the time of measurement is simply the cumulative activity divided by the timespan between measurements. The usefulness of this method was studied using a MC simulation based on an Oak Ridge National Laboratory mathematical phantom with F-FDG filled in six source organs. Numerous TLDs were placed on different locations of the surface and were repeatedly read and replaced. The time-activity curves (TACs) of all organs were successfully reconstructed. Experiments on a physical phantom were also performed. Preliminary results indicate that it is an effective, robust, and simple method for assessing the TAC. The proposed method holds great potential for a range of applications in areas such as targeted radionuclide therapy, pharmaceutical research, and patient-specific dose estimation.
在本研究中,我们提出了一种利用热释光剂量计(TLD)的连续实时测量来估算时间-活度数据的新方法。该方法基于使用TLD测量表面剂量并结合蒙特卡罗(MC)模拟来估算放射性药物的时间-活度数据。它包括四个步骤:(1)在计算机断层扫描图像中识别源器官并勾勒出其轮廓;(2)使用MC代码计算每个源器官在体表的S值;(3)在体表放置多个TLD进行剂量的连续测量;(4)求解剂量-活度方程以生成每个测量周期的器官累积活度。测量时每个器官的活度简单地等于累积活度除以测量间隔时间。使用基于橡树岭国家实验室数学体模的MC模拟研究了该方法的有效性,该体模的六个源器官中填充了F-FDG。在体表的不同位置放置了多个TLD,并对其进行反复读取和更换。成功重建了所有器官的时间-活度曲线(TAC)。还对物理体模进行了实验。初步结果表明,这是一种评估TAC的有效、稳健且简单的方法。所提出的方法在靶向放射性核素治疗、药物研究和患者特异性剂量估算等领域具有广泛的应用潜力。